Skip to the content

Project ongoing · Aerospace

Rocket

We build rockets, each one higher and faster than the last.

the altitude to reach
3 km
the maximum speed expected
Mach 1
the length, for a 110 mm diameter
2565 mm
the altitude of Colombo 1, December 2025
600 m

For people who come from aerospace and mechanical engineering, electronics, physics

Take part in Rocket

The mission

Colombo 3 is designed following the rules of the European Rocketry Challenge, EuRoC, the European competition for student-built rockets, organised by the Portuguese space agency. Following them means working with the rules of a real competition: a target altitude to hit, a minimum payload, recovery with two parachutes, safety documents.

The category chosen is the 3-kilometre one: the rocket has to get as close as possible to that altitude, carry at least 1 kg of payload in CanSat format, and come back to the ground whole, slowed by two parachutes. Precision counts more than power: that is why Colombo 3 has airbrakes.

  1. Liftoff the motor pushes
  2. End of thrust climbs under inertia, the airbrakes control the altitude
  3. Apogee, 3 km gas from a CO₂ cartridge deploys the drogue parachute
  4. Braked descent descends under the drogue parachute
  5. Main parachute opens lower down, the descent slows
  6. Landing the rocket is recovered whole
The flight, from the pad to the ground. Diagram of the flight phases: the altitudes are to scale, the times are not.

From Colombo 1 to Colombo 3

Colombo 1 flew in December 2025: it climbed to 600 metres, reached 617 km/h, about Mach 0.5, with accelerations of up to 20 G, and came back to the ground in one piece after 92 seconds.

Colombo 3 raises the target: five times the altitude and twice the speed, up to that of sound. Each rocket in the series tests what the next one needs: the onboard electronics, recovery with the parachutes, the simulations.

The maximum altitude.
The numbers in the chart
RocketAltitude
Colombo 1 (flown, December 2025)600 m
Colombo 3 (target)3000 m
The maximum speed. Mach 1 at sea level is about 1225 km/h.
The numbers in the chart
RocketSpeed
Colombo 1 (flown, December 2025)617 km/h
Colombo 3 (target)Mach 1, about 1225 km/h

How it is made

Colombo 3 is a single-stage rocket, stabilised by three fins. It is 2565 mm long and 110 wide: the length is 23 times the diameter. Inside, from the nose to the tail, the parts sit one behind the other, as in the diagram.

A structure of three U-channel longerons, 1500 mm long, holds the tail together: the motor is clamped at four points and the fins slot into the longerons' grooves.

  1. Nose cone curved profile, 400 mm long
  2. Payload three 66 × 115 mm CanSat modules
  3. Drogue parachute ejected by gas from a CO₂ cartridge
  4. Main parachute comes out through a side hatch
  5. Airbrakes three petals driven by a servo
  6. Bulkhead between the airbrakes and the motor
  7. Motor solid propellant; in the CAD, a 5-grain Cesaroni Pro75
  8. Fins three, at 120 degrees
Colombo 3 from the side, to scale. Measurements from the CAD model, in millimetres from the tip. The model is missing the avionics, the parachutes and the outer skin around the payload and the motor.
The numbers in the chart
da (mm)a (mm)
Nose cone0400
Payload400745
Drogue parachute7781113
Main parachute11151510
Airbrakes15331595
Bulkhead16451680
Motor17552565
Fins22982538
The measurements
Length2565 mmfrom the tip of the nose cone to the end of the motor
Diameter110 mm
Nose cone400 mmcurved profile, 1.83 litres in volume
Fins3, at 120 degreestrapezoids with chords of 240 and 100 mm, a 100 mm span, 4 mm thick
Fin area510 cm²170 cm² each
Structure3 U-channel longerons1500 mm long, hold the motor and fins
Motorsolid propellantcommercial; in the CAD, a 5-grain Cesaroni Pro75
Dry massless than 15 kgdesign target
Payloadat least 1 kgthree CanSat modules
  • 01

    CAD

    The rocket is designed in Onshape piece by piece: the latest model has 188 bodies.

  • 02

    Trajectories

    Simulations with 3 and 6 degrees of freedom in RocketPy and Matlab, including with changing wind.

  • 03

    Aerodynamics

    CFD simulations in Ansys to find the centre of pressure and keep the rocket stable.

  • 04

    Structure

    Finite element analysis to check that every part can withstand the flight loads.

The descent

Colombo 3 comes back to the ground in two stages. At apogee, the small drogue parachute opens and stabilises the descent. Lower down, the main parachute opens and slows the rocket down to landing.

The two systems are independent. In the first bay, gas from a CO₂ cartridge pushes a plate that slides on linear rails and carries the parachute out. The main one comes out sideways: two servos release a hatch and a second plate, pushed by elastic bands, pushes it out.

The cords that tie the parachutes to the rocket hold at least ten times the expected load, and swivels stop them twisting. The ejections are tested on the ground before every flight.

In the CAD model
Drogue parachute bayfrom 778 to 1113 mmfrom the tip
CO₂ cartridge22 × 89 mm
Push plate254 × 56 × 17 mmon 4 MGN7 linear rails
Main parachute bayfrom 1115 to 1510 mm
Side hatch320 × 56 mmlocked by 2 servos
Push plate258 × 54 × 17 mmon 2 MGN7 linear rails
Cord attachmentsM10 eyeboltsone per bay
Cordssafety factor of 10at least

The airbrakes

Wind, air temperature and mass change from one launch to another, and so does the final altitude. To stop at 3 kilometres and no further, Colombo 3 brakes itself.

When the motor has burned out, and after a safety delay, a PID controller compares the predicted altitude with the target one and opens three petals out of the body: the more they extend, the more air they brake against. Before apogee the petals always retract.

The mechanism fits in 62 mm of rocket. A servo at the centre turns a 59-tooth gear, which drives three 24-tooth pinions; each pinion carries a petal. With this ratio the petals turn 2.46 times more than the servo.

  1. Petals at 150 degrees, servo at 61 17.3 cm² outside the body, 18% of the cross-section
How far the petals extend. Geometric calculation on the CAD model: the area of the three petals extending out from the 110 mm diameter, as the petals turn. The team's tests set the maximum angle in flight.
The numbers in the chart
PetalsServoArea outsideOn the cross-section
84 mm²0,9%
30°12,2°528 mm²5,6%
60°24,4°954 mm²10%
90°36,6°1335 mm²14%
120°48,8°1626 mm²17,1%
150°61°1734 mm²18,2%
180°73,2°1734 mm²18,2%

The avionics

The onboard electronics are designed by the team, on circuit boards we make ourselves. They measure the flight, decide when to open the airbrakes and parachutes, and send the data to the ground. The important sensors are doubled up: if one gets it wrong, the other one notices.

Attitude comes from accelerometers and gyroscopes, combined with the other sensors through a Kalman filter. Two GPS antennas point in opposite directions, so the signal is not lost when the rocket spins. The data is also recorded onboard, in two copies.

The software is tested with the real electronics connected to a flight simulator, hardware-in-the-loop. On the pad, the electronics are armed from outside in a fixed order: recovery first, then telemetry, and motor ignition last.

Onboard
Processors2
Barometers2altitude from pressure
Accelerometers with gyroscope2acceleration and attitude
GPS1with two antennas
Pitot tube1airspeed
Thermocouples3temperatures
Servos3one for the airbrakes, two for the parachute hatch
Solenoid1in the drogue parachute bay
Radiotelemetryantennas on different frequencies

The payload

The rules call for at least 1 kg of payload. Colombo 3 carries three modules in CanSat format, cylinders 66 mm in diameter and 115 in height, stacked right below the nose cone. Each module weighs between 300 and 350 g.

Inside is a biophysics experiment that continues Zero-G's work: understanding what strong accelerations do to living cells and protein crystals. Crystals grown on the Space Station, for example, suffer impacts of up to 67 g on re-entry, and are damaged.

The payload is separate from the rocket, mechanically and electrically, and is qualified with temperature cycling, vibration and centrifuge tests.

Risks and checks

As the rules require, the team wrote the safety documentation: 31 risks, each with a score from 1 to 25, severity times probability, before and after the countermeasures.

At the start, 10 risks were critical. After the countermeasures, none of them are critical any longer: 8 remain high, 14 moderate, 9 low or very low. The sum of the scores drops from 343 to 217.

The ten critical risks, before and after. Score from 1 to 25, severity times probability. From the safety documentation of Colombo 3, May 2026.
The numbers in the chart
Riskbefore the countermeasuresafter
Vibrations that loosen parts208
Attitude sensor errors2012
Delays in assembly2010
Distorted pressure readings in flight1612
Instability during ascent1510
Strong wind1510
Structural failure1510
Flight software errors1510
Parachute cord failure155
Insufficient testing before the flight1510
  • 01

    Vibrations

    Fasteners with mechanical locking, and tests on a shaker table.

  • 02

    Attitude

    Kalman filter, several sensors together, calibration before the flight.

  • 03

    Cords

    Safety factor of 10, aerospace materials, tensile tests.

  • 04

    Stability

    Simulations with 3 and 6 degrees of freedom, and CFD on the centre of pressure.

The design reviews
Preliminary Design Review, PDRcompleted25 February 2026
Critical Design Review, CDRcompleted27 February 2026

Where we are

  1. April 2025We presented the project at IRESS, the meeting for Italian students who build rockets, at Sapienza University in Rome.
  2. December 2025Colombo 1 climbed to 600 metres, at 617 km/h, and came back to the ground in one piece after 92 seconds.
  3. TodayWe are designing Colombo 3, a rocket for a 3-kilometre altitude, under the rules of EuRoC, the European rocket competition.

Photos

The launch, December 2025
One of us sets the rocket on the launch pad
On the pad, December 2025
Two rockets standing in the hall of Palazzo della Borsa
Palazzo della Borsa, April 2026
The motor test, 2025
Andrea Beverini and the rocket team explain on stage how the rocket comes back to the ground with the parachutes
Palazzo della Borsa, April 2026

Videos

People on the project

Who we do it with

  • Ansys
  • Onshape
  • DIME, Università di Genova
  • SimScale
  • Università di Genova
  • CLP
  • Camera di Commercio di Genova

All the partners

Sources

  • Colombo 3, Safety Documentation, COL3-SAF-001, revision A, May 2026.
  • CAD model of Colombo 3, Onshape, 14 May 2026.
  • Presentation at the Deep-Tech Showcase, Palazzo della Borsa, 21 April 2026.
  • European Rocketry Challenge regulations, Portugal Space, euroc.pt.

Do you want to work on it?

You do not need experience and you do not need a CV. Write to us: we invite you to the next meeting, where you meet the team.

Take part in Rocket All the projects